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US8755892B2 - Systems for stimulating neural targets - Google Patents

Systems for stimulating neural targets
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US8755892B2
US8755892B2US11/749,500US74950007AUS8755892B2US 8755892 B2US8755892 B2US 8755892B2US 74950007 AUS74950007 AUS 74950007AUS 8755892 B2US8755892 B2US 8755892B2
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neural
sensor
stimulation
clip
ear lobe
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Badri Amurthur
Imad Libbus
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Cardiac Pacemakers Inc
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Cardiac Pacemakers Inc
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Priority to EP08754350Aprioritypatent/EP2152355A2/en
Priority to JP2010508384Aprioritypatent/JP2010527256A/en
Priority to PCT/US2008/006023prioritypatent/WO2008143814A2/en
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Abstract

Disclosed herein, among other things, is a method for stimulating neural targets in the vicinity of a human ear. According to an embodiment, a device is clipped on a patient ear lobe, the device including a neural stimulation electrode. A neural stimulation signal is applied to the electrode to transcutaneously stimulate neural targets in the vicinity of the ear lobe, according to an embodiment. A physiological parameter is sensed using a sensor connected to the device. According to an embodiment, the neural stimulation signal is adjusted in response to the sensed parameter. The method is used is a variety of treatment regimens, including anti-hypertensive and cardiac improvement therapy.

Description

TECHNICAL FIELD
This disclosure relates generally to medical devices, and more particularly to systems and methods for stimulating neural targets in the vicinity of a human ear.
BACKGROUND
Neural stimulation has been the subject of a number of studies and has been proposed for several therapies. The autonomic system controls physiological activities of the body and the imbalance of autonomic tone is related to many diseases and conditions. Reduced autonomic balance (increase in sympathetic and decrease in parasympathetic cardiac tone) during heart failure has been shown to be associated with left ventricular dysfunction and increased mortality. Sympathetic inhibition, as well as parasympathetic activation, has been associated with reduced arrhythmia vulnerability following a myocardial infarction. Vagus nerve stimulation has been proposed to treat sleep disorders, gastrointestinal motility, eating disorders, obesity, anorexia, gastrointestinal tract disorders, hypertension, coma, and epilepsy. Direct electrical stimulation of parasympathetic nerves can activate the baroreflex, inducing a reduction of sympathetic nerve activity and reducing blood pressure by decreasing vascular resistance. Direct stimulation of the vagal parasympathetic fibers has been shown to reduce heart rate via the sympathetic nervous system. In addition, some research indicates that chronic stimulation of the vagus nerve may be of protective myocardial benefit following cardiac ischemic insult. However, implantation of electrodes is an invasive procedure, and it can be difficult to immediately implant electrodes after a myocardial infarction.
Neural stimulation targeting other nerves has shown similar beneficial effect. Improved systems and methods for stimulating neural targets are needed.
SUMMARY
Disclosed herein, among other things, is a device for mounting to an ear lobe of a patient. The device includes a clip adapted to detachably attach to the ear lobe, according to an embodiment. The device also includes a neural stimulator including an electrode. The neural stimulator is adapted to stimulate neural targets in the vicinity of the ear lobe. The neural stimulator is further adapted to communicate with a stimulation circuit to receive a neural stimulation signal. The device also includes a sensor adapted to monitor a physiological parameter. The device titrates therapy using the physiological parameter, according to various embodiments. In one embodiment, the sensor includes an infrared sensor. The sensor includes a pulse oximetry sensor, in an embodiment.
Disclosed herein, among other things, is a method for stimulating neural targets in the vicinity of a human ear. According to an embodiment, a device is clipped on a patient ear lobe, the device including a neural stimulation electrode. A neural stimulation signal is applied to the electrode to transcutaneously stimulate neural targets in the vicinity of the ear lobe, according to an embodiment. A physiological parameter is sensed using a sensor connected to the device. According to an embodiment, the neural stimulation signal is adjusted in response to the sensed parameter.
Disclosed herein, among other things, is a method for treatment of high blood pressure. According to an embodiment, a patient is identified who could benefit from blood pressure reduction therapy. Therapy for blood pressure reduction is delivered to the patient, including delivering neural stimulation to transcutaneously stimulate neural targets in the vicinity of the ear lobe, according to various embodiments.
Disclosed herein, among other things, is a method for cardiac function improvement treatment. According to an embodiment, a patient is identified who could benefit from cardiac function improvement therapy. Therapy for cardiac function improvement is delivered to the patient, including delivering neural stimulation to transcutaneously stimulate neural targets in the vicinity of the ear lobe, according to various embodiments.
This Summary is an overview of some of the teachings of the present application and not intended to be an exclusive or exhaustive treatment of the present subject matter. Further details about the present subject matter are found in the detailed description and appended claims. The scope of the present invention is defined by the appended claims and their legal equivalents.
BRIEF DESCRIPTION OF THE DRAWINGS
FIGS. 1A and 1B illustrate neural mechanisms for peripheral vascular control.
FIGS. 2A and 2B illustrate a neural stimulator with a neural stimulator electrode adapted to be clipped to an ear lobe to provide neural stimulation therapy, according to various embodiments.
FIG. 3 illustrates a block diagram of various embodiments of a neural stimulation device.
FIG. 4 illustrates an infrared sensor for use in a neural stimulation system, according to various embodiments.
FIG. 5 illustrates various embodiments of a neural stimulator to stimulate neural targets in the vicinity of a human ear in an open loop stimulation system.
FIG. 6 illustrates a neural stimulator to stimulate neural targets in the vicinity of a human ear in a closed loop stimulation system, according to various embodiments.
FIG. 7 illustrates an embodiment of a method for stimulating neural targets in the vicinity of a human ear.
FIG. 8 illustrates a method for treatment of high blood pressure, according to various embodiments.
FIG. 9 illustrates an embodiment of a method for cardiac function improvement treatment.
DETAILED DESCRIPTION
The following detailed description of the present subject matter refers to subject matter in the accompanying drawings which show, by way of illustration, specific aspects and embodiments in which the present subject matter may be practiced. These embodiments are described in sufficient detail to enable those skilled in the art to practice the present subject matter. References to an “one”, or “various” embodiments in this disclosure are not necessarily to the same embodiment, and such references contemplate more than one embodiment. The following detailed description is demonstrative and not to be taken in a limiting sense. The scope of the present subject matter is defined by the appended claims, along with the full scope of legal equivalents to which such claims are entitled.
Various embodiments of the present subject matter are related to systems and methods for stimulating neural targets in the vicinity of a human ear. The neural stimulation can be used for treating hypertension and/or coronary artery disease by chronically lowering blood pressure. The neural stimulation can also be used for treating heart failure by improving cardiac function (cardiac function improvement therapy, or intermittent stress on the heart to improve health of the heart). The system for stimulating neural targets in the vicinity of a human ear can include a transcutaneous or implanted device, in various embodiments. Neural targets in the vicinity of the human ear include, but are not limited to, the auricular branch of the vagus nerve.
Various embodiments provide closed loop control of the neural stimulation. Some neural stimulator embodiments are integrated with a blood pressure monitor, and some sense blood pressure from the carotid artery. Other embodiments deliver the stimulation via an open loop system, such as may be provided by short term therapy, and intermittent or periodic therapies of relative short duration, for example.
Transcutaneous and some superficial subcutaneous approaches to peripheral nerve stimulation are capable of avoiding direct neural contact with a stimulating electrode, thereby reducing problems associated with neural inflammation and injury commonly associated with direct contact electrodes.
Provided below is a discussion of neural physiology. The automatic nervous system (ANS) regulates “involuntary” organs, while the contraction of voluntary (skeletal) muscles is controlled by somatic motor nerves. Examples of involuntary organs include respiratory and digestive organs, and also include blood vessels and the heart. Often, the ANS functions in an involuntary, reflexive manner to regulate glands, to regulate muscles in the skin, eye, stomach, intestines and bladder, and to regulate cardiac muscle and the muscle around blood vessels, for example. The nervous system includes afferent nerves, which transmit neural signals from the body (e.g. vascular control, body organs, and the like) to the central nervous system (CNS), and includes efferent nerves which transmit neural signals from the CNS out to the body.
The ANS includes, but is not limited to, the sympathetic nervous system and the parasympathetic nervous system. The sympathetic nervous system is affiliated with stress and the “fight or flight response” to emergencies. Among other effects, the “fight or flight response” increases blood pressure and heart rate to increase skeletal muscle blood flow, and decreases digestion to provide the energy for “fighting or fleeing.” The parasympathetic nervous system is affiliated with relaxation and the “rest and digest response” which, among other effects, decreases blood pressure and heart rate, and increases digestion to conserve energy. The ANS maintains normal internal function and works with the somatic nervous system.
FIGS. 1A and 1B illustrate neural mechanisms for peripheral vascular control. The vagus nerve is illustrated in these figures.FIG. 1A generally illustrates afferent nerves to vasomotor centers. An afferent nerve conveys impulses toward a nerve center (CNS). A vasomotor center relates to nerves that dilate and constrict blood vessels to control the size of the blood vessels.FIG. 1B generally illustrates efferent nerves from vasomotor centers. An efferent nerve conveys impulses away from a nerve center (CNS).
Stimulating the sympathetic and parasympathetic nervous systems can have effects other than heart rate and blood pressure. For example, stimulating the sympathetic nervous system dilates the pupil, reduces saliva and mucus production, relaxes the bronchial muscle, reduces the successive waves of involuntary contraction (peristalsis) of the stomach and the motility of the stomach, increases the conversion of glycogen to glucose by the liver, decreases urine secretion by the kidneys, and relaxes the wall and closes the sphincter of the bladder. Stimulating the parasympathetic nervous system (inhibiting the sympathetic nervous system) constricts the pupil, increases saliva and mucus production, contracts the bronchial muscle, increases secretions and motility in the stomach and large intestine, and increases digestion in the small intestine, increases urine secretion, and contracts the wall and relaxes the sphincter of the bladder. The functions associated with the sympathetic and parasympathetic nervous systems are many and can be complexly integrated with each other.
The vagus nerve is an afferent nerve, such that the neural stimulation is transmitted to the CNS. Vagal stimulation simultaneously increases parasympathetic and decreases sympathetic activity, and is believed to prevent further remodeling or predisposition to fatal arrhythmias in post-MI patients, to help restore autonomic balance and increase HRV (heart rate variability), to increase parasympathetic and reduce sympathetic tone in hypertrophic cardiac myopathy (HCM), neurogenic hypertension, and arrhythmia protection, to reduce anginal symptoms, to increase coronary blood flow (CBF), and to prevent development of congestive heart failure (CHF) following MI.
The auricular nerve of the vagus nerve, which includes the greater auricular nerve and the lesser auricular nerve, originates from the cervical plexus. The greater auricular nerve innervates the surfaces of the outer ear, and the skin over the parotid gland and mastoid process. The parotid gland is a salivary gland found in front of the ears and that extends to the area beneath the earlobe along the lower border of the jawbone. The mastoid process is the conical prominence of the temporal bone of the human skull behind the ear.
The disclosure relates at least in part to a device for providing stimulation of neural targets near the ear lobe or ear canal for anti-hypertensive and/or cardiac function improvement. In one embodiment, the device is non-invasive. Examples include, but are not limited to, a clip-on ear lobe device (as inFIGS. 2A and 2B, for example) or ear plug (protruding into the ear canal) with a transcutaneous stimulator for chronic lowering of blood pressure or for systolic and diastolic dysfunction, improvement in left ventricular ejection fraction (LVEF), end-diastolic volume (EDV) and/or treatment of heart failure. In another embodiment, the device is implantable. Examples include, but are not limited to, a surgically implanted device in the inner ear for chronic lowering of blood pressure or for systolic and diastolic dysfunction, improvement in left ventricular ejection fraction (LVEF), end-diastolic volume (EDV) and/or treatment of heart failure. The device may be standalone, or communicate with other implanted devices such as a pacemaker, cardiac resynchronization therapy device (CRT), baroreceptor stimulator or vagal nerve stimulation device. When communicating with another device, one of the devices may control the therapy delivery in the other device, and/or the devices may exchange sensor information for therapy titration. Since acupuncture channels meet in the ear, stimulation of neural targets in the vicinity of the ear has potential applications for pain management, obesity, eating disorders, and addiction, for example.
FIGS. 2A and 2B illustrate a neural stimulator with a neural stimulator electrode adapted to be clipped to an ear lobe to provide neural stimulation therapy, according to various embodiments.FIG. 2A illustrates ahuman ear200 and aneural stimulation device203 with neural stimulation electrode (e.g. bipolar electrode) adapted to be clipped to the lobe of the human ear. The neural stimulation electrode is connected to the neural stimulation device. The neural stimulation device is capable of providing appropriate neural stimulation to the neural stimulation electrode to elicit depolarization of the auricular nerve branch, or other neural target in the vicinity of the ear.
According to various embodiments, the illustratedneural stimulation device203 functions as an open loop stimulation system. In the open loop system, the neural stimulation is applied based on a predetermined or programmed set of parameters. Thus, for example, various open loop embodiments stimulate with a predetermined waveform (e.g. white noise, square, sinusoidal, triangular, and the like), magnitude, frequency, burst frequency and duration. Some embodiments provide intermittent stimulation and some embodiments provide periodic stimulation. Periodic stimulation relates to stimulation at regular intervals. Intermittent stimulation relates to applying stimulation during some times but not at other times. Intermittent stimulation does not necessarily refer to providing stimulation at regular intervals.
According to various embodiments, the illustratedneural stimulation device203 functions as a closed loop stimulation system. In the closed loop system, physiology signals are sensed. The neural stimulation device appropriately adjusts the applied neural stimulation therapy based on the sensed physiology sensors. Examples of physiology sensors include sensors to detect heart rate and blood pressure, and further includes electrocardiogram (ECG) monitors.
FIG. 2B illustrates aneural stimulation device203 placed on the ear lobe using aclip210. Other types of devices are possible without departing from the scope of the disclosure. Examples include, but are not limited to, expandable, stent-like electrode placed in the auditory canal, or implanted neural electrodes or devices. Various embodiments incorporate the electrode in an expandable foam, such as an ear plug, to quickly place the electrode against a surface of the external auditory canal. In some embodiments, the housing of the neural stimulation device is conductive, and functions as the electrode.
FIG. 3 illustrates a block diagram of a neural stimulation device, such asdevice203 ofFIGS. 2A-2B, according to various embodiments. According to one embodiment, thedevice300 includes a clip (as illustrated inFIG. 2B) adapted to detachably attach to the ear lobe. The device also includes aneural stimulator302 including anelectrode304. Theneural stimulator302 is adapted to stimulate neural targets in the vicinity of the ear lobe. The neural stimulator is further adapted to communicate with astimulation circuit306 to receive a neural stimulation signal. The device also includes asensor308 adapted to monitor a physiological parameter. According to various embodiments, thesensor308 may include an infrared sensor, such as pulse oximetry sensor, interstitial sensor and light-emitting diode (LED) sensor, for example. The sensor(s) may be configured to sense blood pressure, glucose, respiratory rate and/or heart rate. The device titrates therapy using the physiological parameter, according to various embodiments.
According to various embodiments, thesensor308 includes a blood pressure sensor adapted to sense a parameter indicative of blood pressure, where the neural stimulation signal is adapted to chronically lower blood pressure using the sensed parameter. The neural stimulator delivers stimulation therapy using a preprogrammed schedule to chronically lower blood pressure, according to an embodiment. According to various embodiments, thesensor308 includes a cardiac function sensor adapted to sense a parameter indicative of cardiac function, where the neural stimulation signal is adapted to improve cardiac function using the sensed parameter. The neural stimulator delivers stimulation therapy using a preprogrammed schedule to improve cardiac function, according to an embodiment. In one embodiment, thedevice300 further includes a communication circuit. The communication circuit is adapted to communicate with an implantable and/or external device, in varying embodiments.
FIG. 4 illustrates aninfrared sensor400 for use in a neural stimulation system, according to various embodiments. An example of an infrared sensor includes a pulse oximetry sensor, or other sensor for monitoring blood pressure, heart rate variability (HRV), glucose, respiratory rate, and/or heart rate. The sensor includes alight source405 and aphotodetector410, according to an embodiment. The sensor is used to detect parameters in vessels415 in extremities, such as a finger420, toe, or ear lobe. In an embodiment, light absorption by hemoglobin differs depending upon the oxygen saturation, and pulse and oxygen saturation can be derived from the recorded signal (pulse oximetry embodiment). Other examples of infrared sensors may be implantable in various embodiments.
FIG. 5 illustrates aneural stimulator515 to stimulate neural targets in the vicinity of a human ear in an open loop stimulation system, according to various embodiments. Such a neural stimulation device is capable of functioning as the open loop embodiment ofstimulators203 and302 inFIGS. 2A and 3. The illustratedneural stimulator embodiment515 includes aneural stimulation circuit516, acontroller517, andmemory518. The illustrated embodiment further includes at least oneport519 to connect to at least onelead520. Thus, for example, the lead(s)520 is/are capable of detaching from thedevice515, and other leads are capable of being used with the device. Theneural stimulation circuit516 is connected to the port(s)519 to provide a neural stimulation signal to at least oneneural stimulation electrode521 on the lead(s)520 to stimulate a neural target in the vicinity of a human ear when an appropriate signal is provided to an appropriately-positioned neural stimulation electrode or electrodes. Some embodiments stimulate the neural target using a single lead and a single electrode on the lead. However, multiple leads and multiple electrodes on the leads can be used. In various embodiments, theneural stimulation electrode521 is designed to be clipped to an ear lobe. In various embodiments, theneural stimulation electrode521 is designed to be positioned in an external auditory canal. In various embodiments, theneural stimulation electrode521 is designed to be a transcutaneous electrode, such as a patch electrode, positioned on the skin of the head behind the ear and over or otherwise proximate to the ear. These ear placements are non-invasive. Implantable stimulators can also be used without departing from the scope of this disclosure. With non-invasive techniques, electrodes can be quickly positioned by a person who has minimal training, thus allowing therapy to be quickly applied. Thus, for example, therapy can be quickly applied in an emergency setting. These embodiments also provide a quick, non-invasive way for anti-hypertensive and/or cardiac function improvement therapy.
The illustratedneural stimulator515 further includes a transceiver or other input/output (IO)circuit522, and anactuator523. The IO circuit allows the neural stimulator device to communicate with other devices, and thus can be used to program the neural stimulator device and/or upload historical neural stimulator data recorded over a period of time, for example. A wireless transceiver can be used to provide IO functions for both external and implantable devices. Theactuator523 provides a means for initiating a programmed therapy. Various actuator embodiments include a switch, such as mechanical, electrical, electronic and magnetic switches. The actuator can be triggered by a physician, emergency personal or a patient to initiate a preprogrammed therapy. Thus, in various embodiments, for example, a patient is capable of initiating angina therapy by positioning a magnet next to an implantable embodiment of the neural stimulator device.
Thememory518 includes computer-readable instructions that are capable of being operated on by the controller to perform functions of the device. Thus, in various embodiments, the controller is adapted to operate on the instructions to provideprogrammed stimulation therapies524 such as anti-hypertensive and cardiac function improvement therapies. Additionally, in various embodiments, the controller is adapted to set parameters of the neural stimulation signal and, in some embodiments, vary parameters of the neural stimulation signal to adjust the intensity of the neural stimulation, such as is generally illustrated by thestimulation intensity module525. Some embodiments control and/or vary the waveform, amplitude, frequency, burst frequency and duration, and some embodiments control and/or adjust various combinations of two or more of the waveform, amplitude, frequency, burst frequency and duration. Examples of waveforms include sinusoidal, square, triangular, and “white noise” signals. A white noise signal mimics naturally-occurring neural activity. Various “open loop” systems vary the intensity of the neural stimulation according to a preprogrammed therapy to provide a desired affect. For example, some embodiments vary parameters of the neural stimulation signal to prevent or reduce neural adaptation to the neural stimulation signal.
FIG. 6 illustrates a neural stimulator to stimulate neural targets in the vicinity of a human ear in a closed loop stimulation system, according to various embodiments. Such a neural stimulation device is capable of functioning as the open loop embodiment ofstimulators203 and302 inFIGS. 2A and 3. The illustratedneural stimulator embodiment615 includes aneural stimulation circuit616, afeedback circuit626, acontroller617, andmemory618. The illustrated embodiment further includes at least oneport619 to connect to at least onelead620. Thus, for example, the lead(s) is/are capable of detaching from the device, and other leads are capable of being used with the device. For example, one lead, which is connected to a first port, includes aneural stimulation electrode621, and a second lead, which is connected to a second port, includes aphysiology sensor627. In another example, one lead, which is connected to one port, includes both aneural stimulation electrode621 and aphysiology sensor627. Examples ofphysiology sensor627 include, but are not limited to: infrared sensors such as a pulse oximetry sensor, or other sensor for monitoring blood pressure, heart rate variability (HRV), glucose, respiratory rate, and/or heart rate.
The neural stimulation circuit is connected to the port(s) to provide a neural stimulation signal to at least one neural stimulation electrode on the lead(s) to stimulate a neural target in the vicinity of a human ear when an appropriate signal is provided to an appropriately-positioned neural stimulation electrode. In various embodiments, theneural stimulation electrode621 is designed to be clipped to an ear lobe. In various embodiments, theneural stimulation electrode621 is designed to be positioned in an external auditory canal. In various embodiments, theneural stimulation electrode621 is designed to be a transcutaneous electrode, such as a patch electrode, positioned on the skin of the head behind the ear and over or otherwise proximate to the ear. These ear placements are non-invasive. Implantable stimulators can also be used without departing from the scope of this disclosure.
Thefeedback circuit626 is connected to the port(s) to receive a signal from thephysiology sensor627. The sensor senses a physiology function that depends, at least in part, on neural stimulation. Examples of such functions include heart rate and blood pressure. Thus, various embodiments implement a heart rate sensor as the physiology sensor, and various embodiments implement a blood pressure sensor as the physiology sensor. As stated, the physiology sensor includes an infrared sensor or pulse oximetry sensor, in various embodiments. The carotid artery runs proximate to the auricular nerve branch. Thus, various embodiments provide a sensor capable of directly detecting the heart rate from the carotid artery, and various embodiments provide a sensor capable of directly detecting blood pressure from the carotid artery. One example of such a sensor is an acoustic sensor adapted to sense blood flow. The sensed blood flow is capable of being used to determine blood pressure and/or heart rate. However, other sensor technology can be used.Transceiver622,actuator623, andmemory618 where previously discussed with respect toFIG. 5. This discussion is not repeated here for the sake of brevity.
Thememory618 includes computer-readable instructions that are capable of being operated on by the controller to perform functions of the device. Thus, in various embodiments, the controller is adapted to operate on the instructions to provide programmedneural stimulation therapies624 such as anti-hypertensive and cardiac function improvement therapies. Various “closed loop” systems vary the intensity of the neural stimulation, as generally illustrated by thestimulation intensity module625, based on the sensed physiology signal received by the feedback circuit according to a preprogrammed therapy to provide a desired affect. Thus, the closed loop system is capable of reducing and increasing the neural stimulation intensity as appropriate to maintaining some measured physiological parameters within an upper and lower boundary during the neural stimulation therapy.
FIG. 7 illustrates amethod700 for stimulating neural targets in the vicinity of a human ear, according to various embodiments. According to an embodiment, a device is clipped on a patient ear lobe at705, the device including a neural stimulation electrode. At710, a neural stimulation signal is applied to the electrode to transcutaneously stimulate neural targets in the vicinity of the ear lobe, according to an embodiment. At715, a physiological parameter is sensed using a sensor connected to the device. The sensor includes an infrared sensor, in one embodiment. Other sensors, such as to sense blood pressure, glucose, respiratory rate and/or heart rate, can be used without departing from the scope of this disclosure. According to an embodiment, the neural stimulation signal is adjusted in response to the sensed parameter, at720. According to various embodiments, the sensed physiological parameter includes a parameter indicative of blood pressure, and the neural stimulation signal is applied to chronically lower blood pressure using the sensed parameter. The physiological parameter includes a parameter indicative of cardiac function, and the neural stimulation signal is applied to improve cardiac function using the sensed parameter, according to various embodiments.
FIG. 8 illustrates amethod800 for treatment of high blood pressure, according to various embodiments. According to an embodiment, a patient is identified who could benefit from blood pressure reduction therapy, at805. At810, therapy for blood pressure reduction is delivered to the patient, including delivering neural stimulation to transcutaneously stimulate neural targets in the vicinity of the ear lobe, according to various embodiments. According to various embodiments, neural stimulation is delivered from a device that clips on to an ear lobe of a patient. Neural simulation is delivered to an auricular branch of a vagal nerve, in an embodiment. Other neural targets are used in varying embodiments. In one embodiment, a patient is identified for therapy using an external sensor. In another embodiment, a patient is identified for therapy using an implanted sensor. Blood pressure can be sensed using either an implanted or external sensor, and neural stimulation adjusted (frequency, duration, etc.) using the sensed blood pressure, in a closed loop system embodiment.
FIG. 9 illustrates amethod900 for cardiac function improvement treatment, according to various embodiments. According to an embodiment, a patient is identified who could benefit from cardiac function improvement therapy, at905. At910, therapy for cardiac function improvement is delivered to the patient, including delivering neural stimulation to transcutaneously stimulate neural targets in the vicinity of the ear lobe, according to various embodiments. According to various embodiments, a patient is identified for therapy at least partially by sensing a parameter indicative of cardiac function. Examples of sensed parameters include, but are not limited to, respiratory rate, heart rate, and glucose level. According to an embodiment, a parameter indicative of cardiac function is sensed using a pulse oximetry sensor, or other infrared or LED sensor. Neural stimulation can be adjusted (frequency, duration, etc.) using the sensed parameter indicative of cardiac function, in a closed loop system embodiment.
Various embodiments of the methods ofFIGS. 8 and 9 use a non-invasive technique to position the neural stimulation electrode, such as clipping the electrode on a patient ear lobe, positioning a bipolar electrode in the external auditory canal or positioning a transcutaneous electrode behind the ear and over the auricular nerve branch. Various embodiments use a minimally-invasive technique to position the neural stimulation electrode, such as subcutaneously implanting a neural stimulator and an electrode to stimulate the auricular nerve branch.
The illustratedmethods700,800,900 are capable of being stored as computer-readable instructions in a memory such asmemory518,618, and operated on by controller such ascontroller517,617, inFIGS. 5,6, to provide a desired neural stimulation therapy.
Although specific embodiments have been illustrated and described herein, it will be appreciated by those of ordinary skill in the art that any arrangement which is calculated to achieve the same purpose may be substituted for the specific embodiment shown. It is to be understood that the above description is intended to be illustrative, and not restrictive. The scope of the present subject matter should be determined with reference to the appended claims, along with the full scope of equivalents to which such claims are entitled.

Claims (20)

We claim:
1. A device for mounting to an ear lobe of a patient, the device comprising:
a clip configured to be clipped to the ear lobe;
a neural stimulator connected to the clip and including:
a neural stimulation circuit;
a controller;
a memory; and
an electrode; and
a sensor connected to the stimulation circuit, the sensor adapted to monitor a physiological parameter,
wherein the controller is configured to control the neural stimulation circuit to stimulate neural targets in the vicinity of the ear lobe, including setting parameters of a neural stimulation signal, and further configured to titrate therapy using the physiological parameter, and
wherein the clip, neural stimulator and sensor are configured such that the entire weight of the device is supported by the clip on the ear lobe.
2. The device ofclaim 1, wherein the sensor includes a blood pressure sensor adapted to sense a parameter indicative of blood pressure, wherein the neural stimulation signal is adapted to chronically lower blood pressure using the sensed parameter.
3. The device ofclaim 1, wherein the neural stimulator delivers stimulation therapy using a preprogrammed schedule to chronically lower blood pressure.
4. The device ofclaim 1, wherein the sensor includes a cardiac function sensor adapted to sense a parameter indicative of cardiac function, wherein the neural stimulation signal is adapted to improve cardiac function using the sensed parameter.
5. The device ofclaim 4, wherein the parameter indicative of cardiac function includes blood pressure.
6. The device ofclaim 4, wherein the parameter indicative of cardiac function includes heart rate.
7. The device ofclaim 4, wherein the parameter indicative of cardiac function includes heart rate variability (HRV).
8. The device ofclaim 1, wherein the neural stimulator delivers stimulation therapy using a preprogrammed schedule to improve cardiac function.
9. The device ofclaim 1, further comprising a communication circuit adapted to communicate with an implantable device.
10. The device ofclaim 1, wherein the sensor includes an infrared sensor.
11. A device for mounting to an ear lobe of a patient, the device comprising:
a clip configured to be clipped to the ear lobe;
a neural stimulator including an electrode in the clip, the neural stimulator adapted to stimulate neural targets in the vicinity of the ear lobe, the stimulator further adapted to communicate with a stimulation circuit to receive a neural stimulation signal;
a memory adapted to store a programmed schedule for delivering neural stimulation; and
a sensor connected to the stimulation circuit, the sensor adapted to monitor a physiological parameter,
wherein the device titrates therapy using the physiological parameter, and
wherein the clip, neural stimulator and sensor are configured such that the entire weight of the device is supported by the clip on the ear lobe.
12. The device ofclaim 11, wherein the memory includes computer-readable instructions that are capable of being operated on by a controller to perform functions of the device.
13. The device ofclaim 11, wherein the sensor includes a pulse oximetry sensor.
14. The device ofclaim 11, wherein the neural stimulator is adapted to stimulate an auricular branch of a vagal nerve.
15. The device ofclaim 11, wherein the sensor includes an acoustic sensor adapted to sense blood flow in a carotid artery.
16. A device for mounting to an ear lobe of a patient, the device comprising:
a housing, wherein the housing is conductive and functions as an electrode;
a clip configured to be clipped to the ear lobe;
a neural stimulator within the housing connected to the clip, the neural stimulator connected to the electrode and adapted to stimulate neural targets in the vicinity of the ear lobe;
a stimulation circuit within the housing adapted to communicate with the neural stimulator to provide a neural stimulation signal; and
a sensor connected to the stimulation circuit, the sensor adapted to monitor a physiological parameter,
wherein the device titrates therapy using the physiological parameter, and
wherein the clip, neural stimulator and sensor are configured such that the entire weight of the device is supported by the clip on the ear lobe.
17. The device ofclaim 16, wherein the neural stimulator includes a transceiver.
18. The device ofclaim 17, wherein die transceiver includes a wireless transceiver.
19. The device ofclaim 16, wherein the neural stimulator includes an actuator.
20. The device ofclaim 19, wherein the actuator is adapted to be used to initiate a programmed therapy.
US11/749,5002007-05-162007-05-16Systems for stimulating neural targetsExpired - Fee RelatedUS8755892B2 (en)

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US11/749,500US8755892B2 (en)2007-05-162007-05-16Systems for stimulating neural targets
EP08754350AEP2152355A2 (en)2007-05-162008-05-12Systems and methods for stimulating neural targets
JP2010508384AJP2010527256A (en)2007-05-162008-05-12 System and method for stimulating neural targets
PCT/US2008/006023WO2008143814A2 (en)2007-05-162008-05-12Systems and methods for stimulating neural targets

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Cited By (30)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US20160279024A1 (en)*2015-03-272016-09-29Elwha LLC, a limited liability company of the State of DelawareNeural stimulation method and system with audio output
US20160279022A1 (en)*2015-03-272016-09-29Elwha LlcMethod and system for controlling ear stimulation
US20160279023A1 (en)*2015-03-272016-09-29Elwha LLC, a limited liability company of the State of DelawareUser interface method and system for ear stimulation
WO2016160478A1 (en)*2015-03-272016-10-06Elwha LlcEar stimulation method and system
US9782584B2 (en)2014-06-132017-10-10Nervana, LLCTranscutaneous electrostimulator and methods for electric stimulation
US9802041B2 (en)2014-06-022017-10-31Cala Health, Inc.Systems for peripheral nerve stimulation to treat tremor
US9987489B2 (en)2015-03-272018-06-05Elwha LlcControlling ear stimulation in response to electrical contact sensing
US10039928B2 (en)2015-03-272018-08-07Equility LlcEar stimulation with neural feedback sensing
US10130809B2 (en)2014-06-132018-11-20Nervana, LLCTranscutaneous electrostimulator and methods for electric stimulation
US10327984B2 (en)2015-03-272019-06-25Equility LlcControlling ear stimulation in response to image analysis
US10406376B2 (en)2015-03-272019-09-10Equility LlcMulti-factor control of ear stimulation
US20200094040A1 (en)*2018-09-212020-03-26Battelle Memorial InstituteNon-invasive and selective bioelectronic control of blood pressure
US10625074B2 (en)2013-01-212020-04-21Cala Health, Inc.Devices and methods for controlling tremor
US10765856B2 (en)2015-06-102020-09-08Cala Health, Inc.Systems and methods for peripheral nerve stimulation to treat tremor with detachable therapy and monitoring units
US10814130B2 (en)2016-07-082020-10-27Cala Health, Inc.Dry electrodes for transcutaneous nerve stimulation
US11331480B2 (en)2017-04-032022-05-17Cala Health, Inc.Systems, methods and devices for peripheral neuromodulation for treating diseases related to overactive bladder
US11344722B2 (en)2016-01-212022-05-31Cala Health, Inc.Systems, methods and devices for peripheral neuromodulation for treating diseases related to overactive bladder
US11351370B2 (en)2018-12-102022-06-07Spark Biomedical, Inc.Devices and methods for treating cognitive dysfunction and depression using electrical stimulation
US11364380B2 (en)2015-03-272022-06-21Elwha LlcNerve stimulation system, subsystem, headset, and earpiece
US11596785B2 (en)2015-09-232023-03-07Cala Health, Inc.Systems and methods for peripheral nerve stimulation in the finger or hand to treat hand tremors
US11623088B2 (en)2018-12-102023-04-11Spark Biomedical, Inc.Devices and methods for the treatment of substance use disorders
US11738195B2 (en)2018-11-202023-08-29Nuenerchi, Inc.Electrical stimulation device for applying frequency and peak voltage having inverse relationship
US11857778B2 (en)2018-01-172024-01-02Cala Health, Inc.Systems and methods for treating inflammatory bowel disease through peripheral nerve stimulation
US11890468B1 (en)2019-10-032024-02-06Cala Health, Inc.Neurostimulation systems with event pattern detection and classification
EP4323053A2 (en)2021-04-162024-02-21Texas Medical CenterSystems and methods for stimulating two or more nerve branches
US12017068B2 (en)2022-05-272024-06-25Spark Biomedical, Inc.Devices and methods for treating motion sickness using electrical stimulation
US12029893B1 (en)2023-06-142024-07-09Spark Biomedical, Inc.Wearable auricular neurostimulator and methods of use
US12233265B2 (en)2016-08-252025-02-25Cala Health, Inc.Systems and methods for treating cardiac dysfunction through peripheral nerve stimulation
US12251560B1 (en)2019-08-132025-03-18Cala Health, Inc.Connection quality determination for wearable neurostimulation systems
US12318604B2 (en)2022-05-202025-06-03Spark Biomedical, Inc.Controlling or reducing stress using auricular neurostimulation

Families Citing this family (36)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US9089691B2 (en)*2004-12-072015-07-28Cardiac Pacemakers, Inc.Stimulator for auricular branch of vagus nerve
US8874205B2 (en)*2009-03-202014-10-28ElectroCore, LLCDevice and methods for non-invasive electrical stimulation and their use for vagal nerve stimulation
US9037247B2 (en)2005-11-102015-05-19ElectroCore, LLCNon-invasive treatment of bronchial constriction
US8874227B2 (en)2009-03-202014-10-28ElectroCore, LLCDevices and methods for non-invasive capacitive electrical stimulation and their use for vagus nerve stimulation on the neck of a patient
US8676330B2 (en)*2009-03-202014-03-18ElectroCore, LLCElectrical and magnetic stimulators used to treat migraine/sinus headache and comorbid disorders
US8755892B2 (en)2007-05-162014-06-17Cardiac Pacemakers, Inc.Systems for stimulating neural targets
US8612008B2 (en)*2008-10-232013-12-17Electromedical Products International, Inc.Microcurrent and cranial electrotherapy stimulator for control of anxiety, insomnia, depression and pain
US20100145136A1 (en)*2008-11-212010-06-10Kirsch Daniel LEar clip with pole
US8457765B2 (en)2008-11-212013-06-04Electromedical Products International, Inc.Ear clip with pole
JP5734555B2 (en)2009-10-152015-06-17オリンパス株式会社 Nerve stimulator
JP5646157B2 (en)*2009-10-302014-12-24オリンパス株式会社 Heart treatment equipment
US8682432B2 (en)2009-10-302014-03-25Olympus CorporationCardiac-event processor and heart treatment device
EP2539019A4 (en)*2010-02-262014-03-26Univ Drexel DETECTION OF SIMULTANEOUS STIMULATION EFFECTS
US9931272B2 (en)*2010-05-212018-04-03Gregory SadkhinMethod for reducing a person's weight through hunger control
US11432760B2 (en)*2011-01-122022-09-06Electrocore, Inc.Devices and methods for remote therapy and patient monitoring
EP2606931B1 (en)*2011-12-232015-12-16Mitsunori MinamiBrain state support apparatus and program
US9415220B1 (en)*2012-07-312016-08-16Synchromax, Inc.Auricular stimulation for inflammatory parasympathetic diseases
EP2892612B8 (en)2012-09-052021-03-24electroCore, Inc.Device for non-invasive vagal nerve stimulation to treat disorders
AT13271U1 (en)*2012-12-202013-09-15Biegler Gmbh Electric stimulation device
ES2943637T3 (en)*2013-03-012023-06-15Univ California Cosmetic procedure to alter body mass composition by galvanic vestibular stimulation
US10675465B2 (en)2013-03-012020-06-09The Regents Of The University Of CaliforniaMethods for treatment of disease using galvanic vestibular stimulation
US10569084B2 (en)2013-03-012020-02-25The Regents Of The Universit Of CaliforniaMethod and system for altering body mass composition using galvanic vestibular stimulation
CA2910422C (en)2013-05-032022-09-27Thomas M. CrewsMethod of treating disease by auricular anesthesia of cranialnerves
US10052257B2 (en)2013-06-132018-08-21Dyansys, Inc.Method and apparatus for stimulative electrotherapy
US10130275B2 (en)*2013-06-132018-11-20Dyansys, Inc.Method and apparatus for autonomic nervous system sensitivity-point testing
EP3007760B8 (en)*2013-06-142021-03-10Vivent SAApparatus for processing signals
US20160279025A1 (en)*2015-03-272016-09-29Elwha LLC, a limited liability company of the State of DelawareRecommendation method and system for treatments including ear stimulation
WO2017146659A1 (en)*2016-02-242017-08-31Cakmak Yusuf OzgurA system for decreasing the blood pressure
US10850100B2 (en)2016-02-242020-12-01Yusuf Ozgur CakmakSystem for decreasing the blood glucose level
EP3454816A4 (en)*2016-05-112020-02-12The Regents of The University of California DEVICE, SYSTEM AND METHOD FOR MECHANICAL CUTANEOUS NERVOUS STIMULATION FOR PAIN, STROKE, Mood, Breathing, Movement, Sleep and Vascular Effect
GB201615605D0 (en)*2016-09-142016-10-26Ucl Business PlcWearable device
JP2019533505A (en)*2016-10-122019-11-21イークィリティ エルエルシー Multifactor control of ear stimulation
WO2018204853A1 (en)2017-05-052018-11-08Badri AmurthurStimulation methods and apparatus
EP3793672B1 (en)*2018-05-182025-07-02Musc Foundation for Research DevelopmentNoninvasive cranial nerve therapy
KR102264557B1 (en)*2020-11-302021-06-15서울대학교산학협력단Arrhythmia treatment device and method for treating arrhythmia of user using arrhythmia treatment device
WO2024102870A2 (en)*2022-11-092024-05-16Neurastasis, Inc.Devices and methods for neural stimulation

Citations (41)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
JPS5470685A (en)1977-11-171979-06-06Akira SugiyamaBipolar electric needle
US4503863A (en)1979-06-291985-03-12Katims Jefferson JMethod and apparatus for transcutaneous electrical stimulation
US4865048A (en)1987-12-311989-09-12Eckerson Harold DMethod and apparatus for drug free neurostimulation
US4966164A (en)*1987-12-291990-10-30Tradatlantex AgCombined sound generating device and electrical acupuncture device and method for using the same
US4989605A (en)1989-03-311991-02-05Joel RossenTranscutaneous electrical nerve stimulation (TENS) device
WO1992016257A1 (en)1991-03-221992-10-01Medtronic, Inc.Implantable electrical nerve stimulator/pacemaker with ischemia detector for decreasing cardiac workload
US5197471A (en)1990-05-241993-03-30Otero Servio T ADry medical electrode
US5263480A (en)1991-02-011993-11-23Cyberonics, Inc.Treatment of eating disorders by nerve stimulation
JPH07116190A (en)1993-10-211995-05-09Nagashima Ika Kikai Kk Eardrum anesthesia machine and treatment machine
US5458625A (en)1994-05-041995-10-17Kendall; Donald E.Transcutaneous nerve stimulation device and method for using same
US5514175A (en)1994-11-091996-05-07Cerebral Stimulation, Inc.Auricular electrical stimulator
WO1996025978A1 (en)1995-02-221996-08-29Intermedics, Inc.Implantable medical device with enclosed physiological parameter sensors or telemetry link
JPH08322825A (en)1995-06-021996-12-10Nippon Colin Co LtdAnesthetic depth detector
US5673692A (en)*1995-02-031997-10-07Biosignals Ltd. Co.Single site, multi-variable patient monitor
US5891181A (en)1995-12-231999-04-06Zhu; QiangBlood pressure depressor
WO2001026729A1 (en)1999-10-132001-04-19Cyberonics, Inc.Method to enhance cardiac capillary growth in heart failure patients
WO2001052731A1 (en)2000-01-212001-07-26Instrumentarium CorporationMedical electrode
US20020072781A1 (en)1999-05-052002-06-13Respironics, Inc.Vestibular stimulation system and method
US20020091418A1 (en)1990-04-252002-07-11Cardiac Pacemakers, Inc.Implantable intravenous cardiac stimulation system with pulse generator housing serving as optional additional electrode
US20020107553A1 (en)2000-10-262002-08-08Medtronic, Inc.Method and apparatus for electrically stimulating the nervous system to improve ventricular dysfunction, heart failure, and other cardiac conditions
US20020143369A1 (en)2000-10-262002-10-03Medtronic, Inc.Method and apparatus to minimize effects of a cardiac insult
US20020165586A1 (en)2000-10-262002-11-07Medtronic, Inc.Closed-loop neuromodulation for prevention and treatment of cardiac conditions
WO2003076008A1 (en)2002-03-142003-09-18Brainsgate Ltd.Technique for blood pressure regulation
US20030195588A1 (en)2002-04-162003-10-16Neuropace, Inc.External ear canal interface for the treatment of neurological disorders
JP2003325636A (en)2002-05-162003-11-18Hideaki TanakaHealth appliance
WO2004000413A2 (en)2002-06-242003-12-31Jong-Pil ChungElectric stimulator for alpha-wave derivation
JP2004180988A (en)2002-12-042004-07-02Terumo CorpHeart treatment equipment
WO2004069328A2 (en)2003-02-032004-08-19The Cleveland Clinic FoundationBrainstem and cerebellar modulation of cardiovascular response and disease
JP2004275427A (en)2003-03-142004-10-07Terumo CorpHeart treatment equipment
WO2004091719A2 (en)2003-04-112004-10-28Cardiac Pacemakers, Inc.Multi-parameter arrhythmia discrimination
US20040215289A1 (en)2002-12-042004-10-28Terumo Kabushiki KaishaHeart treatment equipment and method for preventing fatal arrhythmia
US20050102006A1 (en)2003-09-252005-05-12Whitehurst Todd K.Skull-mounted electrical stimulation system
US20050143779A1 (en)2003-12-242005-06-30Cardiac Pacemakers, Inc.Baroreflex modulation based on monitored cardiovascular parameter
US20050165460A1 (en)2004-01-262005-07-28Onje' ErfanNeuro-Electric-Therapy Headset
US20060041283A1 (en)2004-08-192006-02-23Mark GelfandImplantable device and method for treatment of hypertension
US20060122675A1 (en)2004-12-072006-06-08Cardiac Pacemakers, Inc.Stimulator for auricular branch of vagus nerve
WO2006122148A2 (en)2005-05-092006-11-16Cardiac Pacemakers, Inc.Neural stimulation system controlling autonomic balance
US7277761B2 (en)2002-06-122007-10-02Pacesetter, Inc.Vagal stimulation for improving cardiac function in heart failure or CHF patients
WO2007134804A1 (en)2006-05-202007-11-29Cerbomed GmbhDevice for transcutaneous application of a stimulus or for transcutaneous recording of a parameter
WO2008143814A2 (en)2007-05-162008-11-27Cardiac Pacemakers, Inc.Systems and methods for stimulating neural targets
US7536227B1 (en)*2005-01-262009-05-19Pacesetter, Inc.Shielded electrode for nerve sensing

Patent Citations (51)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
JPS5470685A (en)1977-11-171979-06-06Akira SugiyamaBipolar electric needle
US4503863A (en)1979-06-291985-03-12Katims Jefferson JMethod and apparatus for transcutaneous electrical stimulation
US4966164A (en)*1987-12-291990-10-30Tradatlantex AgCombined sound generating device and electrical acupuncture device and method for using the same
US4865048A (en)1987-12-311989-09-12Eckerson Harold DMethod and apparatus for drug free neurostimulation
US4989605A (en)1989-03-311991-02-05Joel RossenTranscutaneous electrical nerve stimulation (TENS) device
US20020091418A1 (en)1990-04-252002-07-11Cardiac Pacemakers, Inc.Implantable intravenous cardiac stimulation system with pulse generator housing serving as optional additional electrode
US5197471A (en)1990-05-241993-03-30Otero Servio T ADry medical electrode
US5263480A (en)1991-02-011993-11-23Cyberonics, Inc.Treatment of eating disorders by nerve stimulation
WO1992016257A1 (en)1991-03-221992-10-01Medtronic, Inc.Implantable electrical nerve stimulator/pacemaker with ischemia detector for decreasing cardiac workload
JPH07116190A (en)1993-10-211995-05-09Nagashima Ika Kikai Kk Eardrum anesthesia machine and treatment machine
US5458625A (en)1994-05-041995-10-17Kendall; Donald E.Transcutaneous nerve stimulation device and method for using same
US5514175A (en)1994-11-091996-05-07Cerebral Stimulation, Inc.Auricular electrical stimulator
US5673692A (en)*1995-02-031997-10-07Biosignals Ltd. Co.Single site, multi-variable patient monitor
US5556421A (en)1995-02-221996-09-17Intermedics, Inc.Implantable medical device with enclosed physiological parameter sensors or telemetry link
JPH11500930A (en)1995-02-221999-01-26サルザー インターメディクス インコーポレーテッド Implantable medical device with sealed physiological parameter sensor or telemetry link
WO1996025978A1 (en)1995-02-221996-08-29Intermedics, Inc.Implantable medical device with enclosed physiological parameter sensors or telemetry link
JPH08322825A (en)1995-06-021996-12-10Nippon Colin Co LtdAnesthetic depth detector
US5891181A (en)1995-12-231999-04-06Zhu; QiangBlood pressure depressor
US20020072781A1 (en)1999-05-052002-06-13Respironics, Inc.Vestibular stimulation system and method
WO2001026729A1 (en)1999-10-132001-04-19Cyberonics, Inc.Method to enhance cardiac capillary growth in heart failure patients
JP2003511163A (en)1999-10-132003-03-25サイベロニクス,インク. How to promote cardiac capillary development in patients with heart failure
US6473644B1 (en)1999-10-132002-10-29Cyberonics, Inc.Method to enhance cardiac capillary growth in heart failure patients
WO2001052731A1 (en)2000-01-212001-07-26Instrumentarium CorporationMedical electrode
JP2003520094A (en)2000-01-212003-07-02インストルメンタリウム コーポレイション Medical electrode
US20020165586A1 (en)2000-10-262002-11-07Medtronic, Inc.Closed-loop neuromodulation for prevention and treatment of cardiac conditions
US20020143369A1 (en)2000-10-262002-10-03Medtronic, Inc.Method and apparatus to minimize effects of a cardiac insult
US20020107553A1 (en)2000-10-262002-08-08Medtronic, Inc.Method and apparatus for electrically stimulating the nervous system to improve ventricular dysfunction, heart failure, and other cardiac conditions
US7218964B2 (en)2000-10-262007-05-15Medtronic, Inc.Closed-loop neuromodulation for prevention and treatment of cardiac conditions
JP2004533297A (en)2001-05-292004-11-04メドトロニック・インコーポレーテッド Closed loop neuromodulation system for prevention and treatment of heart disease
WO2002096512A1 (en)2001-05-292002-12-05Medtronic, Inc.Closed-loop neuromodulation for prevention and treatment of cardiac conditions
WO2003076008A1 (en)2002-03-142003-09-18Brainsgate Ltd.Technique for blood pressure regulation
US20030195588A1 (en)2002-04-162003-10-16Neuropace, Inc.External ear canal interface for the treatment of neurological disorders
JP2003325636A (en)2002-05-162003-11-18Hideaki TanakaHealth appliance
US7277761B2 (en)2002-06-122007-10-02Pacesetter, Inc.Vagal stimulation for improving cardiac function in heart failure or CHF patients
WO2004000413A2 (en)2002-06-242003-12-31Jong-Pil ChungElectric stimulator for alpha-wave derivation
US20040215289A1 (en)2002-12-042004-10-28Terumo Kabushiki KaishaHeart treatment equipment and method for preventing fatal arrhythmia
JP2004180988A (en)2002-12-042004-07-02Terumo CorpHeart treatment equipment
WO2004069328A2 (en)2003-02-032004-08-19The Cleveland Clinic FoundationBrainstem and cerebellar modulation of cardiovascular response and disease
JP2004275427A (en)2003-03-142004-10-07Terumo CorpHeart treatment equipment
JP2006524106A (en)2003-04-112006-10-26カーディアック ペースメーカーズ,インコーポレイテッド Multi-parameter arrhythmia identification
WO2004091719A2 (en)2003-04-112004-10-28Cardiac Pacemakers, Inc.Multi-parameter arrhythmia discrimination
US20050102006A1 (en)2003-09-252005-05-12Whitehurst Todd K.Skull-mounted electrical stimulation system
US20050143779A1 (en)2003-12-242005-06-30Cardiac Pacemakers, Inc.Baroreflex modulation based on monitored cardiovascular parameter
US20050165460A1 (en)2004-01-262005-07-28Onje' ErfanNeuro-Electric-Therapy Headset
US20060041283A1 (en)2004-08-192006-02-23Mark GelfandImplantable device and method for treatment of hypertension
WO2006062728A1 (en)2004-12-072006-06-15Cardiac Pacemakers, Inc.Stimulator for auricular branch of vagus nerve
US20060122675A1 (en)2004-12-072006-06-08Cardiac Pacemakers, Inc.Stimulator for auricular branch of vagus nerve
US7536227B1 (en)*2005-01-262009-05-19Pacesetter, Inc.Shielded electrode for nerve sensing
WO2006122148A2 (en)2005-05-092006-11-16Cardiac Pacemakers, Inc.Neural stimulation system controlling autonomic balance
WO2007134804A1 (en)2006-05-202007-11-29Cerbomed GmbhDevice for transcutaneous application of a stimulus or for transcutaneous recording of a parameter
WO2008143814A2 (en)2007-05-162008-11-27Cardiac Pacemakers, Inc.Systems and methods for stimulating neural targets

Non-Patent Citations (34)

* Cited by examiner, † Cited by third party
Title
"European Application Serial No. 05851959,6, Response filed Mar. 30, 2009 to Office Action mailed Nov. 24, 2008", 15 pgs.
"European Application Serial No. 05851959.6, Office Action mailed Apr. 23, 2010", 4 pgs.
"European Application Serial No. 05851959.6, Office Action mailed Apr. 30, 2009", 3 pgs.
"European Application Serial No. 05851959.6, Office Action mailed Nov. 24, 2008", 3 pgs.
"European Application Serial No. 05851959.6, Response filed Sep. 2, 2010 to Communication dated Apr. 23, 2010", 5 pgs.
"European Application Serial No. 05851959.6, Response filed Sep. 21, 2009 to Office Action mailed Apr. 30, 2009", 10 pgs.
"International Application Serial No. PCT/US2008/006023, International Search Report mailed Dec. 3, 2008", 6 pgs.
"International Application Serial No. PCT/US2008/006023, Invitation to Pay Additional Fees and Partial International Search Report mailed Aug. 5, 2008", 6 pgs.
"International Application Serial No. PCT/US2008/006023, Written Opinion mailed Dec. 3, 2008", 9 pgs.
"International Search Report and Written Opinion for Application No. PCT/US2005/042208, Date Mailed Apr. 18, 2006", 16 Pages.
"Japanese Application Serial No. 2007-545498, Amendment filed Nov. 20, 2008", (w/ English Translation of Amended Claims), 18 pgs.
"Japanese Application Serial No. 2007-545498, Examiners Decision of Final Refusal mailed Jun. 11, 2012", With English Translation, 9 pgs.
"Japanese Application Serial No. 2007-545498, Office Action mailed Sep. 14, 2011", (w/ English Translation), 6 pgs.
"Japanese Application Serial No. 2007-545498, Office Action Response filed Mar. 12, 2012 to Office Action mailed Sep. 14, 2011", With English Claims, 20 pgs.
"Japanese Application Serial No. 2010-508384, Examiners Decision of Final Refusal mailed May 17, 2012", With English Translation, 9 pgs.
"Japanese Application Serial No. 2010-508384, Office Action mailed Dec. 19, 2011", (w/ English Translation), 10 pgs.
"Japanese Application Serial No. 2010-508384, Response filed Mar. 16, 2012 to Office Action mailed Dec. 19, 2011", (w/ English Translation of Amended Claims), 9 pgs.
"U.S. Appl. No. 11/005,703, Advisory Action mailed Jun. 18, 2007", 3 pgs.
"U.S. Appl. No. 11/005,703, Appeal Brief filed Jan. 9, 2008", 50 pgs.
"U.S. Appl. No. 11/005,703, Communication mailed Jul. 10, 2008", 2 pgs.
"U.S. Appl. No. 11/005,703, Examiner's Answer mailed Apr. 7, 2008", 24 pgs.
"U.S. Appl. No. 11/005,703, Final Offiice Action mailed Apr. 11, 2007", 13 pgs.
"U.S. Appl. No. 11/005,703, Non-Final Office Action mailed Nov. 8, 2006", 12 pgs.
"U.S. Appl. No. 11/005,703, Reply Brief filed Jun. 6, 2008 to Examiner's Answer mailed Apr. 7, 2008", 10 pgs.
"U.S. Appl. No. 11/005,703, Response filed Feb. 8, 2007 to Non-Final Office Action mailed Nov. 8, 2006", 26 pgs.
"U.S. Appl. No. 11/005,703, Response filed Jun. 11, 2007 to Final Office Action mailed Apr. 11, 2007", 16 pgs.
Huang, H Q., et al., "Improvement of blood pressure and left cardiac function in patients with hypertension by auricular acupuncture", Zhong Xi Yi Jie He Za Zhi, vol. 11, No. 11, [Article in Chinese with English Abstract], (Nov. 1991),654-6, 643-4.
Imad, Libbus , et al., "Transcutaneous Neurostimulator for Modulating Cardiovascular Function", U.S. Appl. No. 11/548,359, filed Oct. 11, 2006,46 pgs.
Libbus, I. , et al., "Method and Apparatus for Synchronizing Neural Simulation to Cardiac Cycles", U.S. Appl. No. 11/099,141, filed Apr. 5, 2005, 36 pgs.
Libbus, I. , et al., "System and Method for Closed-Loop Neural Stimulation", U.S. Appl. No. 10/992,319, filed Nov. 18, 2004, 50 pgs.
Nolan, James , et al., "Prospective study of heart rate variability and mortality in chronic heart failure: results of the United Kingdom heart failure evaluation and asessment of risk trial (UK-heart).", Circulation, vol. 98, No. 15, (Oct. 13, 1998),1510-1516.
Sigurdsson, Axel , "The role of neurohormonal activation in chronic heart failure and postmyocardial infarction", American Heart Journal, 132 (1 Pt 2 Su), (Jul. 1996),229-234.
Vanoli, Emilio , "Vagal stimulation and prevention of sudden death in conscious dogs with a healed myocardial infarction", Circulation Research, vol. 68, No. 5, (May 1991),1471-1481.
Zamotrinsky, A V., et al., "Vagal neurostimulation in patients with coronary artery disease", Autonomic Neuroscience-Basic & Clinical, 88(1-2), (Apr. 12, 2001),109-116.

Cited By (51)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US10850090B2 (en)2013-01-212020-12-01Cala Health, Inc.Devices and methods for controlling tremor
US12161858B2 (en)2013-01-212024-12-10Cala Health, Inc.Devices and methods for controlling tremor
US10625074B2 (en)2013-01-212020-04-21Cala Health, Inc.Devices and methods for controlling tremor
US10905879B2 (en)2014-06-022021-02-02Cala Health, Inc.Methods for peripheral nerve stimulation
US9802041B2 (en)2014-06-022017-10-31Cala Health, Inc.Systems for peripheral nerve stimulation to treat tremor
US10549093B2 (en)2014-06-022020-02-04Cala Health, Inc.Method for peripheral nerve stimulation
US10960207B2 (en)2014-06-022021-03-30Cala Health, Inc.Systems for peripheral nerve stimulation
US10173060B2 (en)2014-06-022019-01-08Cala Health, Inc.Methods for peripheral nerve stimulation
US10179238B2 (en)2014-06-022019-01-15Cala Health, Inc.Systems for peripheral nerve stimulation
US12109413B2 (en)2014-06-022024-10-08Cala Health, Inc.Systems and methods for peripheral nerve stimulation to treat tremor
US10561839B2 (en)2014-06-022020-02-18Cala Health, Inc.Systems for peripheral nerve stimulation
US9782584B2 (en)2014-06-132017-10-10Nervana, LLCTranscutaneous electrostimulator and methods for electric stimulation
US10130809B2 (en)2014-06-132018-11-20Nervana, LLCTranscutaneous electrostimulator and methods for electric stimulation
US10327984B2 (en)2015-03-272019-06-25Equility LlcControlling ear stimulation in response to image analysis
WO2016160478A1 (en)*2015-03-272016-10-06Elwha LlcEar stimulation method and system
US10512783B2 (en)*2015-03-272019-12-24Equility LlcUser interface method and system for ear stimulation
US10398902B2 (en)*2015-03-272019-09-03Equility LlcNeural stimulation method and system with audio output
US20160279024A1 (en)*2015-03-272016-09-29Elwha LLC, a limited liability company of the State of DelawareNeural stimulation method and system with audio output
US10589105B2 (en)*2015-03-272020-03-17The Invention Science Fund Ii, LlcMethod and system for controlling ear stimulation
US20160279023A1 (en)*2015-03-272016-09-29Elwha LLC, a limited liability company of the State of DelawareUser interface method and system for ear stimulation
US10293158B2 (en)2015-03-272019-05-21Equility LlcControlling ear stimulation in response to a status of a subject
US11364380B2 (en)2015-03-272022-06-21Elwha LlcNerve stimulation system, subsystem, headset, and earpiece
US20160279022A1 (en)*2015-03-272016-09-29Elwha LlcMethod and system for controlling ear stimulation
US10406376B2 (en)2015-03-272019-09-10Equility LlcMulti-factor control of ear stimulation
US10039928B2 (en)2015-03-272018-08-07Equility LlcEar stimulation with neural feedback sensing
US9987489B2 (en)2015-03-272018-06-05Elwha LlcControlling ear stimulation in response to electrical contact sensing
US12157001B2 (en)2015-06-102024-12-03Cala Health, Inc.Systems and methods for peripheral nerve stimulation to treat tremor with detachable therapy and monitoring units
US10765856B2 (en)2015-06-102020-09-08Cala Health, Inc.Systems and methods for peripheral nerve stimulation to treat tremor with detachable therapy and monitoring units
US11596785B2 (en)2015-09-232023-03-07Cala Health, Inc.Systems and methods for peripheral nerve stimulation in the finger or hand to treat hand tremors
US12420082B2 (en)2015-09-232025-09-23Cala Health, Inc.Systems and methods for peripheral nerve stimulation in the finger or hand
US11918806B2 (en)2016-01-212024-03-05Cala Health, Inc.Systems, methods and devices for peripheral neuromodulation of the leg
US12357824B2 (en)2016-01-212025-07-15Cala Health, Inc.Systems, methods and devices for peripheral neuromodulation
US11344722B2 (en)2016-01-212022-05-31Cala Health, Inc.Systems, methods and devices for peripheral neuromodulation for treating diseases related to overactive bladder
US10814130B2 (en)2016-07-082020-10-27Cala Health, Inc.Dry electrodes for transcutaneous nerve stimulation
US12233265B2 (en)2016-08-252025-02-25Cala Health, Inc.Systems and methods for treating cardiac dysfunction through peripheral nerve stimulation
US12161865B2 (en)2017-04-032024-12-10Cala Health, Inc.Systems, methods and devices for peripheral neuromodulation
US11331480B2 (en)2017-04-032022-05-17Cala Health, Inc.Systems, methods and devices for peripheral neuromodulation for treating diseases related to overactive bladder
US11857778B2 (en)2018-01-172024-01-02Cala Health, Inc.Systems and methods for treating inflammatory bowel disease through peripheral nerve stimulation
US20200094040A1 (en)*2018-09-212020-03-26Battelle Memorial InstituteNon-invasive and selective bioelectronic control of blood pressure
US10806920B2 (en)*2018-09-212020-10-20Battelle Memorial InstituteNon-invasive and selective bioelectronic control of blood pressure
US11738195B2 (en)2018-11-202023-08-29Nuenerchi, Inc.Electrical stimulation device for applying frequency and peak voltage having inverse relationship
US11623088B2 (en)2018-12-102023-04-11Spark Biomedical, Inc.Devices and methods for the treatment of substance use disorders
US11351370B2 (en)2018-12-102022-06-07Spark Biomedical, Inc.Devices and methods for treating cognitive dysfunction and depression using electrical stimulation
US12251560B1 (en)2019-08-132025-03-18Cala Health, Inc.Connection quality determination for wearable neurostimulation systems
US11890468B1 (en)2019-10-032024-02-06Cala Health, Inc.Neurostimulation systems with event pattern detection and classification
EP4323053A2 (en)2021-04-162024-02-21Texas Medical CenterSystems and methods for stimulating two or more nerve branches
US12318604B2 (en)2022-05-202025-06-03Spark Biomedical, Inc.Controlling or reducing stress using auricular neurostimulation
US12214193B2 (en)2022-05-272025-02-04Spark Biomedical, Inc.Devices and methods for treating motion sickness using electrical stimulation
US12017068B2 (en)2022-05-272024-06-25Spark Biomedical, Inc.Devices and methods for treating motion sickness using electrical stimulation
US12029893B1 (en)2023-06-142024-07-09Spark Biomedical, Inc.Wearable auricular neurostimulator and methods of use
US12337167B2 (en)2023-06-142025-06-24Spark Biomedical, Inc.Wearable auricular neurostimulator and methods of use

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JP2010527256A (en)2010-08-12

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